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用于寨卡病毒诊断的快速即时检测纸质表面等离子体激元生物传感器

Rapid, Point-of-Care, Paper-Based Plasmonic Biosensor for Zika Virus Diagnosis.

作者信息

Jiang Qisheng, Chandar Yatin J, Cao Sisi, Kharasch Evan D, Singamaneni Srikanth, Morrissey Jeremiah J

机构信息

Department of Mechanical Engineering and Materials Science, Institute of Materials Science and Engineering, Washington University in St. Louis, Saint Louis, MO, 63130, USA.

The Davidson Academy of Nevada, Reno, NV, 89507, USA.

出版信息

Adv Biosyst. 2017 Sep;1(9):e1700096. doi: 10.1002/adbi.201700096. Epub 2017 Aug 10.

Abstract

Zika virus (ZIKV) is an increasing global health challenge. There is an urgent need for rapid, low-cost, and accurate diagnostic tests that can be broadly distributed and applied in pandemic regions. Here, an innovative, adaptable, and rapidly deployable bioplasmonic paper-based device (BPD) is demonstrated for the detection of ZIKV infection, via quantification of serum anti-ZIKV-nonstructural protein 1 (NS1) IgG and IgM. BPD is based on ZIKV-NS1 protein as a capture element and gold nanorods as plasmonic nanotransducers. The BPD displays excellent sensitivity and selectivity to both anti-ZIKV-NS1 IgG and IgM in human serum. In addition, excellent stability of BPDs at room and even elevated temperature for one month is achieved by metal-organic framework (MOF)-based biopreservation. MOF-based preservation obviates the need for device refrigeration during transport and storage, thus enabling their use in point-of-care and resource-limited settings for ZIKV surveillance. Furthermore, the versatile design (interchangeable recognition element) of BPDs more generally enables their ready adaptation to diagnose other emerging infectious diseases.

摘要

寨卡病毒(ZIKV)对全球健康构成的挑战日益严峻。迫切需要能够广泛分发并应用于疫情地区的快速、低成本且准确的诊断检测方法。在此,展示了一种创新的、可适配的且可快速部署的基于生物等离子体纸的装置(BPD),用于通过定量血清抗寨卡病毒非结构蛋白1(NS1)IgG和IgM来检测寨卡病毒感染。BPD以寨卡病毒NS1蛋白作为捕获元件,以金纳米棒作为等离子体纳米换能器。该BPD对人血清中的抗寨卡病毒NS1 IgG和IgM均表现出优异的灵敏度和选择性。此外,通过基于金属有机框架(MOF)的生物保存方法,可实现BPD在室温和甚至升高温度下长达一个月的优异稳定性。基于MOF的保存方法无需在运输和储存过程中对装置进行冷藏,从而使其能够用于寨卡病毒监测的即时检测和资源有限的环境中。此外,BPD的通用设计(可互换识别元件)更普遍地使其能够轻松适配用于诊断其他新发传染病。

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